Furko Monika
Institute of Technical Physics and Materials Science, Centre for Energy Research, Konkoly-Thege Str. 29-33, H-1121 Budapest, Hungary.
J Funct Biomater. 2025 May 3;16(5):161. doi: 10.3390/jfb16050161.
Tissue engineering represents a revolutionary approach to regenerating damaged bones and tissues. The most promising materials for this purpose are calcium phosphate-based bioactive ceramics (CaPs) and bioglasses, due to their excellent biocompatibility, osteoconductivity, and bioactivity. This review aims to provide a comprehensive and comparative analysis of different bioactive calcium phosphate derivatives and bioglasses, highlighting their roles and potential in both bone and soft tissue engineering as well as in drug delivery systems. We explore their applications as composites with natural and synthetic biopolymers, which can enhance their mechanical and bioactive properties. This review critically examines the advantages and limitations of each material, their preparation methods, biological efficacy, biodegradability, and practical applications. By summarizing recent research from scientific literature, this paper offers a detailed analysis of the current state of the art. The novelty of this work lies in its systematic comparison of bioactive ceramics and bioglasses, providing insights into their suitability for specific tissue engineering applications. The expected primary outcomes include a deeper understanding of how each material interacts with biological systems, their suitability for specific applications, and the implications for future research directions.
组织工程是一种用于再生受损骨骼和组织的革命性方法。由于具有出色的生物相容性、骨传导性和生物活性,用于此目的最有前景的材料是磷酸钙基生物活性陶瓷(CaPs)和生物玻璃。本综述旨在对不同的生物活性磷酸钙衍生物和生物玻璃进行全面且比较性的分析,突出它们在骨和软组织工程以及药物递送系统中的作用和潜力。我们探讨它们作为与天然和合成生物聚合物的复合材料的应用,这可以增强它们的机械性能和生物活性。本综述批判性地审视了每种材料的优点和局限性、它们的制备方法、生物学功效、生物降解性及实际应用。通过总结科学文献中的最新研究,本文对当前的技术水平进行了详细分析。这项工作的新颖之处在于对生物活性陶瓷和生物玻璃进行了系统比较,深入了解了它们对特定组织工程应用的适用性。预期的主要成果包括更深入地了解每种材料如何与生物系统相互作用、它们对特定应用的适用性以及对未来研究方向的影响。